Пример #1
0
def event_to_quakeml(event, filename):
    """
    Write one of those events to QuakeML.
    """
    # Create all objects.
    cat = Catalog()
    ev = Event()
    org = Origin()
    mag = Magnitude()
    fm = FocalMechanism()
    mt = MomentTensor()
    t = Tensor()
    # Link them together.
    cat.append(ev)
    ev.origins.append(org)
    ev.magnitudes.append(mag)
    ev.focal_mechanisms.append(fm)
    fm.moment_tensor = mt
    mt.tensor = t

    # Fill values
    ev.resource_id = "smi:inversion/%s" % str(event["identifier"])
    org.time = event["time"]
    org.longitude = event["longitude"]
    org.latitude = event["latitude"]
    org.depth = event["depth_in_km"] * 1000

    mag.mag = event["Mw"]
    mag.magnitude_type = "Mw"

    t.m_rr = event["Mrr"]
    t.m_tt = event["Mpp"]
    t.m_pp = event["Mtt"]
    t.m_rt = event["Mrt"]
    t.m_rp = event["Mrp"]
    t.m_tp = event["Mtp"]

    cat.write(filename, format="quakeml")
Пример #2
0
def event_to_quakeml(event, filename):
    """
    Write one of those events to QuakeML.
    """
    # Create all objects.
    cat = Catalog()
    ev = Event()
    org = Origin()
    mag = Magnitude()
    fm = FocalMechanism()
    mt = MomentTensor()
    t = Tensor()
    # Link them together.
    cat.append(ev)
    ev.origins.append(org)
    ev.magnitudes.append(mag)
    ev.focal_mechanisms.append(fm)
    fm.moment_tensor = mt
    mt.tensor = t

    # Fill values
    ev.resource_id = "smi:inversion/%s" % str(event["identifier"])
    org.time = event["time"]
    org.longitude = event["longitude"]
    org.latitude = event["latitude"]
    org.depth = event["depth_in_km"] * 1000

    mag.mag = event["Mw"]
    mag.magnitude_type = "Mw"

    t.m_rr = event["Mrr"]
    t.m_tt = event["Mpp"]
    t.m_pp = event["Mtt"]
    t.m_rt = event["Mrt"]
    t.m_rp = event["Mrp"]
    t.m_tp = event["Mtp"]

    cat.write(filename, format="quakeml")
Пример #3
0
    def _parseRecordDp(self, line, event):
        """
        Parses the 'source parameter data - primary' record Dp
        """
        source_contributor = line[2:6].strip()
        computation_type = line[6]
        exponent = self._intZero(line[7])
        scale = math.pow(10, exponent)
        centroid_origin_time = line[8:14] + '.' + line[14]
        orig_time_stderr = line[15:17]
        if orig_time_stderr == 'FX':
            orig_time_stderr = 'Fixed'
        else:
            orig_time_stderr =\
                self._floatWithFormat(orig_time_stderr, '2.1', scale)
        centroid_latitude = self._floatWithFormat(line[17:21], '4.2')
        lat_type = line[21]
        if centroid_latitude is not None:
            centroid_latitude *= self._coordinateSign(lat_type)
        lat_stderr = line[22:25]
        if lat_stderr == 'FX':
            lat_stderr = 'Fixed'
        else:
            lat_stderr = self._floatWithFormat(lat_stderr, '3.2', scale)
        centroid_longitude = self._floatWithFormat(line[25:30], '5.2')
        lon_type = line[30]
        if centroid_longitude is not None:
            centroid_longitude *= self._coordinateSign(lon_type)
        lon_stderr = line[31:34]
        if lon_stderr == 'FX':
            lon_stderr = 'Fixed'
        else:
            lon_stderr = self._floatWithFormat(lon_stderr, '3.2', scale)
        centroid_depth = self._floatWithFormat(line[34:38], '4.1')
        depth_stderr = line[38:40]
        if depth_stderr == 'FX' or depth_stderr == 'BD':
            depth_stderr = 'Fixed'
        else:
            depth_stderr = self._floatWithFormat(depth_stderr, '2.1', scale)
        station_number = self._intZero(line[40:43])
        component_number = self._intZero(line[43:46])
        station_number2 = self._intZero(line[46:48])
        component_number2 = self._intZero(line[48:51])
        #unused: half_duration = self._floatWithFormat(line[51:54], '3.1')
        moment = self._floatWithFormat(line[54:56], '2.1')
        moment_stderr = self._floatWithFormat(line[56:58], '2.1')
        moment_exponent = self._int(line[58:60])
        if (moment is not None) and (moment_exponent is not None):
            moment *= math.pow(10, moment_exponent)
        if (moment_stderr is not None) and (moment_exponent is not None):
            moment_stderr *= math.pow(10, moment_exponent)

        evid = event.resource_id.id.split('/')[-1]
        #Create a new origin only if centroid time is defined:
        origin = None
        if centroid_origin_time.strip() != '.':
            origin = Origin()
            res_id = '/'.join(
                (res_id_prefix, 'origin', evid, source_contributor.lower(),
                 'mw' + computation_type.lower()))
            origin.resource_id = ResourceIdentifier(id=res_id)
            origin.creation_info =\
                CreationInfo(agency_id=source_contributor)
            date = event.origins[0].time.strftime('%Y%m%d')
            origin.time = UTCDateTime(date + centroid_origin_time)
            #Check if centroid time is on the next day:
            if origin.time < event.origins[0].time:
                origin.time += timedelta(days=1)
            self._storeUncertainty(origin.time_errors, orig_time_stderr)
            origin.latitude = centroid_latitude
            origin.longitude = centroid_longitude
            origin.depth = centroid_depth * 1000
            if lat_stderr == 'Fixed' and lon_stderr == 'Fixed':
                origin.epicenter_fixed = True
            else:
                self._storeUncertainty(origin.latitude_errors,
                                       self._latErrToDeg(lat_stderr))
                self._storeUncertainty(
                    origin.longitude_errors,
                    self._lonErrToDeg(lon_stderr, origin.latitude))
            if depth_stderr == 'Fixed':
                origin.depth_type = 'operator assigned'
            else:
                origin.depth_type = 'from location'
                self._storeUncertainty(origin.depth_errors,
                                       depth_stderr,
                                       scale=1000)
            quality = OriginQuality()
            quality.used_station_count =\
                station_number + station_number2
            quality.used_phase_count =\
                component_number + component_number2
            origin.quality = quality
            origin.type = 'centroid'
            event.origins.append(origin)
        focal_mechanism = FocalMechanism()
        res_id = '/'.join(
            (res_id_prefix, 'focalmechanism', evid, source_contributor.lower(),
             'mw' + computation_type.lower()))
        focal_mechanism.resource_id = ResourceIdentifier(id=res_id)
        focal_mechanism.creation_info =\
            CreationInfo(agency_id=source_contributor)
        moment_tensor = MomentTensor()
        if origin is not None:
            moment_tensor.derived_origin_id = origin.resource_id
        else:
            #this is required for QuakeML validation:
            res_id = '/'.join((res_id_prefix, 'no-origin'))
            moment_tensor.derived_origin_id =\
                ResourceIdentifier(id=res_id)
        for mag in event.magnitudes:
            if mag.creation_info.agency_id == source_contributor:
                moment_tensor.moment_magnitude_id = mag.resource_id
        res_id = '/'.join(
            (res_id_prefix, 'momenttensor', evid, source_contributor.lower(),
             'mw' + computation_type.lower()))
        moment_tensor.resource_id = ResourceIdentifier(id=res_id)
        moment_tensor.scalar_moment = moment
        self._storeUncertainty(moment_tensor.scalar_moment_errors,
                               moment_stderr)
        data_used = DataUsed()
        data_used.station_count = station_number + station_number2
        data_used.component_count = component_number + component_number2
        if computation_type == 'C':
            res_id = '/'.join((res_id_prefix, 'methodID=CMT'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            #CMT algorithm uses long-period body waves,
            #very-long-period surface waves and
            #intermediate period surface waves (since 2004
            #for shallow and intermediate-depth earthquakes
            # --Ekstrom et al., 2012)
            data_used.wave_type = 'combined'
        if computation_type == 'M':
            res_id = '/'.join((res_id_prefix, 'methodID=moment_tensor'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            #FIXME: not sure which kind of data is used by
            #"moment tensor" algorithm.
            data_used.wave_type = 'unknown'
        elif computation_type == 'B':
            res_id = '/'.join((res_id_prefix, 'methodID=broadband_data'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            #FIXME: is 'combined' correct here?
            data_used.wave_type = 'combined'
        elif computation_type == 'F':
            res_id = '/'.join((res_id_prefix, 'methodID=P-wave_first_motion'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            data_used.wave_type = 'P waves'
        elif computation_type == 'S':
            res_id = '/'.join((res_id_prefix, 'methodID=scalar_moment'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            #FIXME: not sure which kind of data is used
            #for scalar moment determination.
            data_used.wave_type = 'unknown'
        moment_tensor.data_used = data_used
        focal_mechanism.moment_tensor = moment_tensor
        event.focal_mechanisms.append(focal_mechanism)
        return focal_mechanism
Пример #4
0
def __read_single_fnetmt_entry(line, **kwargs):
    """
    Reads a single F-net moment tensor solution to a
    :class:`~obspy.core.event.Event` object.

    :param line: String containing moment tensor information.
    :type line: str.
    """

    a = line.split()
    try:
        ot = UTCDateTime().strptime(a[0], '%Y/%m/%d,%H:%M:%S.%f')
    except ValueError:
        ot = UTCDateTime().strptime(a[0], '%Y/%m/%d,%H:%M:%S')
    lat, lon, depjma, magjma = map(float, a[1:5])
    depjma *= 1000
    region = a[5]
    strike = tuple(map(int, a[6].split(';')))
    dip = tuple(map(int, a[7].split(';')))
    rake = tuple(map(int, a[8].split(';')))
    mo = float(a[9])
    depmt = float(a[10]) * 1000
    magmt = float(a[11])
    var_red = float(a[12])
    mxx, mxy, mxz, myy, myz, mzz, unit = map(float, a[13:20])

    event_name = util.gen_sc3_id(ot)
    e = Event(event_type="earthquake")
    e.resource_id = _get_resource_id(event_name, 'event')

    # Standard JMA solution
    o_jma = Origin(time=ot, latitude=lat, longitude=lon,
                   depth=depjma, depth_type="from location",
                   region=region)
    o_jma.resource_id = _get_resource_id(event_name,
                                         'origin', 'JMA')
    m_jma = Magnitude(mag=magjma, magnitude_type='ML',
                      origin_id=o_jma.resource_id)
    m_jma.resource_id = _get_resource_id(event_name,
                                         'magnitude', 'JMA')
    # MT solution
    o_mt = Origin(time=ot, latitude=lat, longitude=lon,
                  depth=depmt, region=region,
                  depth_type="from moment tensor inversion")
    o_mt.resource_id = _get_resource_id(event_name,
                                        'origin', 'MT')
    m_mt = Magnitude(mag=magmt, magnitude_type='Mw',
                     origin_id=o_mt.resource_id)
    m_mt.resource_id = _get_resource_id(event_name,
                                        'magnitude', 'MT')
    foc_mec = FocalMechanism(triggering_origin_id=o_jma.resource_id)
    foc_mec.resource_id = _get_resource_id(event_name,
                                           "focal_mechanism")
    nod1 = NodalPlane(strike=strike[0], dip=dip[0], rake=rake[0])
    nod2 = NodalPlane(strike=strike[1], dip=dip[1], rake=rake[1])
    nod = NodalPlanes(nodal_plane_1=nod1, nodal_plane_2=nod2)
    foc_mec.nodal_planes = nod

    tensor = Tensor(m_rr=mxx, m_tt=myy, m_pp=mzz, m_rt=mxy, m_rp=mxz, m_tp=myz)
    cm = Comment(text="Basis system: North,East,Down (Jost and \
    Herrmann 1989")
    cm.resource_id = _get_resource_id(event_name, 'comment', 'mt')
    mt = MomentTensor(derived_origin_id=o_mt.resource_id,
                      moment_magnitude_id=m_mt.resource_id,
                      scalar_moment=mo, comments=[cm],
                      tensor=tensor, variance_reduction=var_red)
    mt.resource_id = _get_resource_id(event_name,
                                      'moment_tensor')
    foc_mec.moment_tensor = mt
    e.origins = [o_jma, o_mt]
    e.magnitudes = [m_jma, m_mt]
    e.focal_mechanisms = [foc_mec]
    e.preferred_magnitude_id = m_mt.resource_id.id
    e.preferred_origin_id = o_mt.resource_id.id
    e.preferred_focal_mechanism_id = foc_mec.resource_id.id
    return e
Пример #5
0
def _internal_read_single_cmtsolution(buf):
    """
    Reads a single CMTSOLUTION file to a :class:`~obspy.core.event.Catalog`
    object.

    :param buf: File to read.
    :type buf: open file or file-like object
    """
    # The first line encodes the preliminary epicenter.
    line = buf.readline()

    hypocenter_catalog = line[:5].strip().decode()

    origin_time = line[5:].strip().split()[:6]
    values = list(map(int, origin_time[:-1])) + \
        [float(origin_time[-1])]
    try:
        origin_time = UTCDateTime(*values)
    except (TypeError, ValueError):
        warnings.warn("Could not determine origin time from line: %s. Will "
                      "be set to zero." % line)
        origin_time = UTCDateTime(0)
    line = line[28:].split()
    latitude, longitude, depth, body_wave_mag, surface_wave_mag = \
        map(float, line[:5])

    # The rest encodes the centroid solution.
    event_name = buf.readline().strip().split()[-1].decode()

    preliminary_origin = Origin(
        resource_id=_get_resource_id(event_name, "origin", tag="prelim"),
        time=origin_time,
        longitude=longitude,
        latitude=latitude,
        # Depth is in meters.
        depth=depth * 1000.0,
        origin_type="hypocenter",
        region=_fe.get_region(longitude=longitude, latitude=latitude),
        evaluation_status="preliminary")

    preliminary_bw_magnitude = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="prelim_bw"),
        mag=body_wave_mag,
        magnitude_type="Mb",
        evaluation_status="preliminary",
        origin_id=preliminary_origin.resource_id)

    preliminary_sw_magnitude = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="prelim_sw"),
        mag=surface_wave_mag,
        magnitude_type="MS",
        evaluation_status="preliminary",
        origin_id=preliminary_origin.resource_id)

    values = [
        "time_shift", "half_duration", "latitude", "longitude", "depth",
        "m_rr", "m_tt", "m_pp", "m_rt", "m_rp", "m_tp"
    ]
    cmt_values = {
        _i: float(buf.readline().strip().split()[-1])
        for _i in values
    }

    # Moment magnitude calculation in dyne * cm.
    m_0 = 1.0 / math.sqrt(2.0) * math.sqrt(
        cmt_values["m_rr"]**2 + cmt_values["m_tt"]**2 + cmt_values["m_pp"]**2 +
        2.0 * cmt_values["m_rt"]**2 + 2.0 * cmt_values["m_rp"]**2 +
        2.0 * cmt_values["m_tp"]**2)
    m_w = 2.0 / 3.0 * (math.log10(m_0) - 16.1)

    # Convert to meters.
    cmt_values["depth"] *= 1000.0
    # Convert to Newton meter.
    values = ["m_rr", "m_tt", "m_pp", "m_rt", "m_rp", "m_tp"]
    for value in values:
        cmt_values[value] /= 1E7

    cmt_origin = Origin(
        resource_id=_get_resource_id(event_name, "origin", tag="cmt"),
        time=origin_time + cmt_values["time_shift"],
        longitude=cmt_values["longitude"],
        latitude=cmt_values["latitude"],
        depth=cmt_values["depth"],
        origin_type="centroid",
        # Could rarely be different than the epicentral region.
        region=_fe.get_region(longitude=cmt_values["longitude"],
                              latitude=cmt_values["latitude"])
        # No evaluation status as it could be any of several and the file
        # format does not provide that information.
    )

    cmt_mag = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="mw"),
        # Round to 2 digits.
        mag=round(m_w, 2),
        magnitude_type="mw",
        origin_id=cmt_origin.resource_id)

    foc_mec = FocalMechanism(
        resource_id=_get_resource_id(event_name, "focal_mechanism"),
        # The preliminary origin most likely triggered the focal mechanism
        # determination.
        triggering_origin_id=preliminary_origin.resource_id)

    tensor = Tensor(m_rr=cmt_values["m_rr"],
                    m_pp=cmt_values["m_pp"],
                    m_tt=cmt_values["m_tt"],
                    m_rt=cmt_values["m_rt"],
                    m_rp=cmt_values["m_rp"],
                    m_tp=cmt_values["m_tp"])

    # Source time function is a triangle, according to the SPECFEM manual.
    stf = SourceTimeFunction(
        type="triangle",
        # The duration is twice the half duration.
        duration=2.0 * cmt_values["half_duration"])

    mt = MomentTensor(
        resource_id=_get_resource_id(event_name, "moment_tensor"),
        derived_origin_id=cmt_origin.resource_id,
        moment_magnitude_id=cmt_mag.resource_id,
        # Convert to Nm.
        scalar_moment=m_0 / 1E7,
        tensor=tensor,
        source_time_function=stf)

    # Assemble everything.
    foc_mec.moment_tensor = mt

    ev = Event(resource_id=_get_resource_id(event_name, "event"),
               event_type="earthquake")
    ev.event_descriptions.append(
        EventDescription(text=event_name, type="earthquake name"))
    ev.comments.append(
        Comment(text="Hypocenter catalog: %s" % hypocenter_catalog,
                force_resource_id=False))

    ev.origins.append(cmt_origin)
    ev.origins.append(preliminary_origin)
    ev.magnitudes.append(cmt_mag)
    ev.magnitudes.append(preliminary_bw_magnitude)
    ev.magnitudes.append(preliminary_sw_magnitude)
    ev.focal_mechanisms.append(foc_mec)

    # Set the preferred items.
    ev.preferred_origin_id = cmt_origin.resource_id.id
    ev.preferred_magnitude_id = cmt_mag.resource_id.id
    ev.preferred_focal_mechanism_id = foc_mec.resource_id.id

    ev.scope_resource_ids()

    return ev
Пример #6
0
def __read_single_cmtsolution(buf):
    """
    Reads a single CMTSOLUTION file to a :class:`~obspy.core.event.Catalog`
    object.

    :param buf: File to read.
    :type buf: Open file or open file like object.
    """
    # The first line encodes the preliminary epicenter.
    line = buf.readline()

    hypocenter_catalog = line[:4].strip().decode()

    origin_time = line[4:].strip().split()[:6]
    values = list(map(int, origin_time[:-1])) + \
        [float(origin_time[-1])]
    try:
        origin_time = UTCDateTime(*values)
    except (TypeError, ValueError):
        warnings.warn("Could not determine origin time from line: %s. Will "
                      "be set to zero." % line)
        origin_time = UTCDateTime(0)
    line = line.split()[7:]
    latitude, longitude, depth, body_wave_mag, surface_wave_mag = \
        map(float, line[:5])

    # The rest encodes the centroid solution.
    event_name = buf.readline().strip().split()[-1].decode()

    preliminary_origin = Origin(
        resource_id=_get_resource_id(event_name, "origin", tag="prelim"),
        time=origin_time,
        longitude=longitude,
        latitude=latitude,
        # Depth is in meters.
        depth=depth * 1000.0,
        origin_type="hypocenter",
        region=_fe.get_region(longitude=longitude, latitude=latitude),
        evaluation_status="preliminary"
    )

    preliminary_bw_magnitude = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="prelim_bw"),
        mag=body_wave_mag, magnitude_type="Mb",
        evaluation_status="preliminary",
        origin_id=preliminary_origin.resource_id)

    preliminary_sw_magnitude = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="prelim_sw"),
        mag=surface_wave_mag, magnitude_type="MS",
        evaluation_status="preliminary",
        origin_id=preliminary_origin.resource_id)

    values = ["time_shift", "half_duration", "latitude", "longitude",
              "depth", "m_rr", "m_tt", "m_pp", "m_rt", "m_rp", "m_tp"]
    cmt_values = {_i: float(buf.readline().strip().split()[-1])
                  for _i in values}

    # Moment magnitude calculation in dyne * cm.
    m_0 = 1.0 / math.sqrt(2.0) * math.sqrt(
        cmt_values["m_rr"] ** 2 +
        cmt_values["m_tt"] ** 2 +
        cmt_values["m_pp"] ** 2 +
        2.0 * cmt_values["m_rt"] ** 2 +
        2.0 * cmt_values["m_rp"] ** 2 +
        2.0 * cmt_values["m_tp"] ** 2)
    m_w = 2.0 / 3.0 * (math.log10(m_0) - 16.1)

    # Convert to meters.
    cmt_values["depth"] *= 1000.0
    # Convert to Newton meter.
    values = ["m_rr", "m_tt", "m_pp", "m_rt", "m_rp", "m_tp"]
    for value in values:
        cmt_values[value] /= 1E7

    cmt_origin = Origin(
        resource_id=_get_resource_id(event_name, "origin", tag="cmt"),
        time=origin_time + cmt_values["time_shift"],
        longitude=cmt_values["longitude"],
        latitude=cmt_values["latitude"],
        depth=cmt_values["depth"],
        origin_type="centroid",
        # Could rarely be different than the epicentral region.
        region=_fe.get_region(longitude=cmt_values["longitude"],
                              latitude=cmt_values["latitude"])
        # No evaluation status as it could be any of several and the file
        # format does not provide that information.
    )

    cmt_mag = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="mw"),
        # Round to 2 digits.
        mag=round(m_w, 2),
        magnitude_type="mw",
        origin_id=cmt_origin.resource_id
    )

    foc_mec = FocalMechanism(
        resource_id=_get_resource_id(event_name, "focal_mechanism"),
        # The preliminary origin most likely triggered the focal mechanism
        # determination.
        triggering_origin_id=preliminary_origin.resource_id
    )

    tensor = Tensor(
        m_rr=cmt_values["m_rr"],
        m_pp=cmt_values["m_pp"],
        m_tt=cmt_values["m_tt"],
        m_rt=cmt_values["m_rt"],
        m_rp=cmt_values["m_rp"],
        m_tp=cmt_values["m_tp"]
    )

    # Source time function is a triangle, according to the SPECFEM manual.
    stf = SourceTimeFunction(
        type="triangle",
        # The duration is twice the half duration.
        duration=2.0 * cmt_values["half_duration"]
    )

    mt = MomentTensor(
        resource_id=_get_resource_id(event_name, "moment_tensor"),
        derived_origin_id=cmt_origin.resource_id,
        moment_magnitude_id=cmt_mag.resource_id,
        # Convert to Nm.
        scalar_moment=m_0 / 1E7,
        tensor=tensor,
        source_time_function=stf
    )

    # Assemble everything.
    foc_mec.moment_tensor = mt

    ev = Event(resource_id=_get_resource_id(event_name, "event"),
               event_type="earthquake")
    ev.event_descriptions.append(EventDescription(text=event_name,
                                                  type="earthquake name"))
    ev.comments.append(Comment(
        text="Hypocenter catalog: %s" % hypocenter_catalog,
        force_resource_id=False))

    ev.origins.append(cmt_origin)
    ev.origins.append(preliminary_origin)
    ev.magnitudes.append(cmt_mag)
    ev.magnitudes.append(preliminary_bw_magnitude)
    ev.magnitudes.append(preliminary_sw_magnitude)
    ev.focal_mechanisms.append(foc_mec)

    # Set the preferred items.
    ev.preferred_origin_id = cmt_origin.resource_id.id
    ev.preferred_magnitude_id = cmt_mag.resource_id.id
    ev.preferred_focal_mechanism_id = foc_mec.resource_id.id

    return ev
Пример #7
0
def __read_single_fnetmt_entry(line, **kwargs):
    """
    Reads a single F-net moment tensor solution to a
    :class:`~obspy.core.event.Event` object.

    :param line: String containing moment tensor information.
    :type line: str.
    """

    a = line.split()
    try:
        ot = UTCDateTime().strptime(a[0], '%Y/%m/%d,%H:%M:%S.%f')
    except ValueError:
        ot = UTCDateTime().strptime(a[0], '%Y/%m/%d,%H:%M:%S')
    lat, lon, depjma, magjma = map(float, a[1:5])
    depjma *= 1000
    region = a[5]
    strike = tuple(map(int, a[6].split(';')))
    dip = tuple(map(int, a[7].split(';')))
    rake = tuple(map(int, a[8].split(';')))
    mo = float(a[9])
    depmt = float(a[10]) * 1000
    magmt = float(a[11])
    var_red = float(a[12])
    mxx, mxy, mxz, myy, myz, mzz, unit = map(float, a[13:20])

    event_name = util.gen_sc3_id(ot)
    e = Event(event_type="earthquake")
    e.resource_id = _get_resource_id(event_name, 'event')

    # Standard JMA solution
    o_jma = Origin(time=ot,
                   latitude=lat,
                   longitude=lon,
                   depth=depjma,
                   depth_type="from location",
                   region=region)
    o_jma.resource_id = _get_resource_id(event_name, 'origin', 'JMA')
    m_jma = Magnitude(mag=magjma,
                      magnitude_type='ML',
                      origin_id=o_jma.resource_id)
    m_jma.resource_id = _get_resource_id(event_name, 'magnitude', 'JMA')
    # MT solution
    o_mt = Origin(time=ot,
                  latitude=lat,
                  longitude=lon,
                  depth=depmt,
                  region=region,
                  depth_type="from moment tensor inversion")
    o_mt.resource_id = _get_resource_id(event_name, 'origin', 'MT')
    m_mt = Magnitude(mag=magmt,
                     magnitude_type='Mw',
                     origin_id=o_mt.resource_id)
    m_mt.resource_id = _get_resource_id(event_name, 'magnitude', 'MT')
    foc_mec = FocalMechanism(triggering_origin_id=o_jma.resource_id)
    foc_mec.resource_id = _get_resource_id(event_name, "focal_mechanism")
    nod1 = NodalPlane(strike=strike[0], dip=dip[0], rake=rake[0])
    nod2 = NodalPlane(strike=strike[1], dip=dip[1], rake=rake[1])
    nod = NodalPlanes(nodal_plane_1=nod1, nodal_plane_2=nod2)
    foc_mec.nodal_planes = nod

    tensor = Tensor(m_rr=mxx, m_tt=myy, m_pp=mzz, m_rt=mxy, m_rp=mxz, m_tp=myz)
    cm = Comment(text="Basis system: North,East,Down (Jost and \
    Herrmann 1989")
    cm.resource_id = _get_resource_id(event_name, 'comment', 'mt')
    mt = MomentTensor(derived_origin_id=o_mt.resource_id,
                      moment_magnitude_id=m_mt.resource_id,
                      scalar_moment=mo,
                      comments=[cm],
                      tensor=tensor,
                      variance_reduction=var_red)
    mt.resource_id = _get_resource_id(event_name, 'moment_tensor')
    foc_mec.moment_tensor = mt
    e.origins = [o_jma, o_mt]
    e.magnitudes = [m_jma, m_mt]
    e.focal_mechanisms = [foc_mec]
    e.preferred_magnitude_id = m_mt.resource_id.id
    e.preferred_origin_id = o_mt.resource_id.id
    e.preferred_focal_mechanism_id = foc_mec.resource_id.id
    return e
Пример #8
0
def par2quakeml(Par_filename,
                QuakeML_filename,
                rotation_axis=[0.0, 1.0, 0.0],
                rotation_angle=-57.5,
                origin_time="2000-01-01 00:00:00.0",
                event_type="other event"):
    # initialise event
    ev = Event()

    # open and read Par file
    fid = open(Par_filename, 'r')

    fid.readline()
    fid.readline()
    fid.readline()
    fid.readline()

    lat_old = 90.0 - float(fid.readline().strip().split()[0])
    lon_old = float(fid.readline().strip().split()[0])
    depth = float(fid.readline().strip().split()[0])

    fid.readline()

    Mtt_old = float(fid.readline().strip().split()[0])
    Mpp_old = float(fid.readline().strip().split()[0])
    Mrr_old = float(fid.readline().strip().split()[0])
    Mtp_old = float(fid.readline().strip().split()[0])
    Mtr_old = float(fid.readline().strip().split()[0])
    Mpr_old = float(fid.readline().strip().split()[0])

    # rotate event into physical domain

    lat, lon = rot.rotate_lat_lon(lat_old, lon_old, rotation_axis,
                                  rotation_angle)
    Mrr, Mtt, Mpp, Mtr, Mpr, Mtp = rot.rotate_moment_tensor(
        Mrr_old, Mtt_old, Mpp_old, Mtr_old, Mpr_old, Mtp_old, lat_old, lon_old,
        rotation_axis, rotation_angle)

    # populate event origin data
    ev.event_type = event_type

    ev_origin = Origin()
    ev_origin.time = UTCDateTime(origin_time)
    ev_origin.latitude = lat
    ev_origin.longitude = lon
    ev_origin.depth = depth
    ev.origins.append(ev_origin)

    # populte event moment tensor

    ev_tensor = Tensor()
    ev_tensor.m_rr = Mrr
    ev_tensor.m_tt = Mtt
    ev_tensor.m_pp = Mpp
    ev_tensor.m_rt = Mtr
    ev_tensor.m_rp = Mpr
    ev_tensor.m_tp = Mtp

    ev_momenttensor = MomentTensor()
    ev_momenttensor.tensor = ev_tensor
    ev_momenttensor.scalar_moment = np.sqrt(Mrr**2 + Mtt**2 + Mpp**2 + Mtr**2 +
                                            Mpr**2 + Mtp**2)

    ev_focalmechanism = FocalMechanism()
    ev_focalmechanism.moment_tensor = ev_momenttensor
    ev_focalmechanism.nodal_planes = NodalPlanes().setdefault(0, 0)

    ev.focal_mechanisms.append(ev_focalmechanism)

    # populate event magnitude
    ev_magnitude = Magnitude()
    ev_magnitude.mag = 0.667 * (np.log10(ev_momenttensor.scalar_moment) - 9.1)
    ev_magnitude.magnitude_type = 'Mw'
    ev.magnitudes.append(ev_magnitude)

    # write QuakeML file
    cat = Catalog()
    cat.append(ev)
    cat.write(QuakeML_filename, format="quakeml")

    # clean up
    fid.close()
Пример #9
0
    def _parse_record_dp(self, line, event):
        """
        Parses the 'source parameter data - primary' record Dp
        """
        source_contributor = line[2:6].strip()
        computation_type = line[6]
        exponent = self._int_zero(line[7])
        scale = math.pow(10, exponent)
        centroid_origin_time = line[8:14] + '.' + line[14]
        orig_time_stderr = line[15:17]
        if orig_time_stderr == 'FX':
            orig_time_stderr = 'Fixed'
        else:
            orig_time_stderr = \
                self._float_with_format(orig_time_stderr, '2.1', scale)
        centroid_latitude = self._float_with_format(line[17:21], '4.2')
        lat_type = line[21]
        if centroid_latitude is not None:
            centroid_latitude *= self._coordinate_sign(lat_type)
        lat_stderr = line[22:25]
        if lat_stderr == 'FX':
            lat_stderr = 'Fixed'
        else:
            lat_stderr = self._float_with_format(lat_stderr, '3.2', scale)
        centroid_longitude = self._float_with_format(line[25:30], '5.2')
        lon_type = line[30]
        if centroid_longitude is not None:
            centroid_longitude *= self._coordinate_sign(lon_type)
        lon_stderr = line[31:34]
        if lon_stderr == 'FX':
            lon_stderr = 'Fixed'
        else:
            lon_stderr = self._float_with_format(lon_stderr, '3.2', scale)
        centroid_depth = self._float_with_format(line[34:38], '4.1')
        depth_stderr = line[38:40]
        if depth_stderr == 'FX' or depth_stderr == 'BD':
            depth_stderr = 'Fixed'
        else:
            depth_stderr = self._float_with_format(depth_stderr, '2.1', scale)
        station_number = self._int_zero(line[40:43])
        component_number = self._int_zero(line[43:46])
        station_number2 = self._int_zero(line[46:48])
        component_number2 = self._int_zero(line[48:51])
        # unused: half_duration = self._float_with_format(line[51:54], '3.1')
        moment = self._float_with_format(line[54:56], '2.1')
        moment_stderr = self._float_with_format(line[56:58], '2.1')
        moment_exponent = self._int(line[58:60])
        if (moment is not None) and (moment_exponent is not None):
            moment *= math.pow(10, moment_exponent)
        if (moment_stderr is not None) and (moment_exponent is not None):
            moment_stderr *= math.pow(10, moment_exponent)

        evid = event.resource_id.id.split('/')[-1]
        # Create a new origin only if centroid time is defined:
        origin = None
        if centroid_origin_time.strip() != '.':
            origin = Origin()
            res_id = '/'.join((res_id_prefix, 'origin',
                               evid, source_contributor.lower(),
                               'mw' + computation_type.lower()))
            origin.resource_id = ResourceIdentifier(id=res_id)
            origin.creation_info = \
                CreationInfo(agency_id=source_contributor)
            date = event.origins[0].time.strftime('%Y%m%d')
            origin.time = UTCDateTime(date + centroid_origin_time)
            # Check if centroid time is on the next day:
            if origin.time < event.origins[0].time:
                origin.time += timedelta(days=1)
            self._store_uncertainty(origin.time_errors, orig_time_stderr)
            origin.latitude = centroid_latitude
            origin.longitude = centroid_longitude
            origin.depth = centroid_depth * 1000
            if lat_stderr == 'Fixed' and lon_stderr == 'Fixed':
                origin.epicenter_fixed = True
            else:
                self._store_uncertainty(origin.latitude_errors,
                                        self._lat_err_to_deg(lat_stderr))
                self._store_uncertainty(origin.longitude_errors,
                                        self._lon_err_to_deg(lon_stderr,
                                                             origin.latitude))
            if depth_stderr == 'Fixed':
                origin.depth_type = 'operator assigned'
            else:
                origin.depth_type = 'from location'
                self._store_uncertainty(origin.depth_errors,
                                        depth_stderr, scale=1000)
            quality = OriginQuality()
            quality.used_station_count = \
                station_number + station_number2
            quality.used_phase_count = \
                component_number + component_number2
            origin.quality = quality
            origin.origin_type = 'centroid'
            event.origins.append(origin)
        focal_mechanism = FocalMechanism()
        res_id = '/'.join((res_id_prefix, 'focalmechanism',
                           evid, source_contributor.lower(),
                           'mw' + computation_type.lower()))
        focal_mechanism.resource_id = ResourceIdentifier(id=res_id)
        focal_mechanism.creation_info = \
            CreationInfo(agency_id=source_contributor)
        moment_tensor = MomentTensor()
        if origin is not None:
            moment_tensor.derived_origin_id = origin.resource_id
        else:
            # this is required for QuakeML validation:
            res_id = '/'.join((res_id_prefix, 'no-origin'))
            moment_tensor.derived_origin_id = \
                ResourceIdentifier(id=res_id)
        for mag in event.magnitudes:
            if mag.creation_info.agency_id == source_contributor:
                moment_tensor.moment_magnitude_id = mag.resource_id
        res_id = '/'.join((res_id_prefix, 'momenttensor',
                           evid, source_contributor.lower(),
                           'mw' + computation_type.lower()))
        moment_tensor.resource_id = ResourceIdentifier(id=res_id)
        moment_tensor.scalar_moment = moment
        self._store_uncertainty(moment_tensor.scalar_moment_errors,
                                moment_stderr)
        data_used = DataUsed()
        data_used.station_count = station_number + station_number2
        data_used.component_count = component_number + component_number2
        if computation_type == 'C':
            res_id = '/'.join((res_id_prefix, 'methodID=CMT'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # CMT algorithm uses long-period body waves,
            # very-long-period surface waves and
            # intermediate period surface waves (since 2004
            # for shallow and intermediate-depth earthquakes
            # --Ekstrom et al., 2012)
            data_used.wave_type = 'combined'
        if computation_type == 'M':
            res_id = '/'.join((res_id_prefix, 'methodID=moment_tensor'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: not sure which kind of data is used by
            # "moment tensor" algorithm.
            data_used.wave_type = 'unknown'
        elif computation_type == 'B':
            res_id = '/'.join((res_id_prefix, 'methodID=broadband_data'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: is 'combined' correct here?
            data_used.wave_type = 'combined'
        elif computation_type == 'F':
            res_id = '/'.join((res_id_prefix, 'methodID=P-wave_first_motion'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            data_used.wave_type = 'P waves'
        elif computation_type == 'S':
            res_id = '/'.join((res_id_prefix, 'methodID=scalar_moment'))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: not sure which kind of data is used
            # for scalar moment determination.
            data_used.wave_type = 'unknown'
        moment_tensor.data_used = [data_used]
        focal_mechanism.moment_tensor = moment_tensor
        event.focal_mechanisms.append(focal_mechanism)
        return focal_mechanism
Пример #10
0
def par2quakeml(Par_filename, QuakeML_filename, rotation_axis=[0.0, 1.0, 0.0],
                rotation_angle=-57.5, origin_time="2000-01-01 00:00:00.0",
                event_type="other event"):
    # initialise event
    ev = Event()

    # open and read Par file
    fid = open(Par_filename, 'r')

    fid.readline()
    fid.readline()
    fid.readline()
    fid.readline()

    lat_old = 90.0 - float(fid.readline().strip().split()[0])
    lon_old = float(fid.readline().strip().split()[0])
    depth = float(fid.readline().strip().split()[0])

    fid.readline()

    Mtt_old = float(fid.readline().strip().split()[0])
    Mpp_old = float(fid.readline().strip().split()[0])
    Mrr_old = float(fid.readline().strip().split()[0])
    Mtp_old = float(fid.readline().strip().split()[0])
    Mtr_old = float(fid.readline().strip().split()[0])
    Mpr_old = float(fid.readline().strip().split()[0])

    # rotate event into physical domain

    lat, lon = rot.rotate_lat_lon(lat_old, lon_old, rotation_axis,
                                  rotation_angle)
    Mrr, Mtt, Mpp, Mtr, Mpr, Mtp = rot.rotate_moment_tensor(
        Mrr_old, Mtt_old, Mpp_old, Mtr_old, Mpr_old, Mtp_old, lat_old, lon_old,
        rotation_axis, rotation_angle)

    # populate event origin data
    ev.event_type = event_type

    ev_origin = Origin()
    ev_origin.time = UTCDateTime(origin_time)
    ev_origin.latitude = lat
    ev_origin.longitude = lon
    ev_origin.depth = depth
    ev.origins.append(ev_origin)

    # populte event moment tensor

    ev_tensor = Tensor()
    ev_tensor.m_rr = Mrr
    ev_tensor.m_tt = Mtt
    ev_tensor.m_pp = Mpp
    ev_tensor.m_rt = Mtr
    ev_tensor.m_rp = Mpr
    ev_tensor.m_tp = Mtp

    ev_momenttensor = MomentTensor()
    ev_momenttensor.tensor = ev_tensor
    ev_momenttensor.scalar_moment = np.sqrt(Mrr ** 2 + Mtt ** 2 + Mpp ** 2 +
                                            Mtr ** 2 + Mpr ** 2 + Mtp ** 2)

    ev_focalmechanism = FocalMechanism()
    ev_focalmechanism.moment_tensor = ev_momenttensor
    ev_focalmechanism.nodal_planes = NodalPlanes().setdefault(0, 0)

    ev.focal_mechanisms.append(ev_focalmechanism)

    # populate event magnitude
    ev_magnitude = Magnitude()
    ev_magnitude.mag = 0.667 * (np.log10(ev_momenttensor.scalar_moment) - 9.1)
    ev_magnitude.magnitude_type = 'Mw'
    ev.magnitudes.append(ev_magnitude)

    # write QuakeML file
    cat = Catalog()
    cat.append(ev)
    cat.write(QuakeML_filename, format="quakeml")

    # clean up
    fid.close()
Пример #11
0
    def build(self):
        """
        Build an obspy moment tensor focal mech event

        This makes the tensor output into an Event containing:
        1) a FocalMechanism with a MomentTensor, NodalPlanes, and PrincipalAxes
        2) a Magnitude of the Mw from the Tensor

        Which is what we want for outputting QuakeML using
        the (slightly modified) obspy code.

        Input
        -----
        filehandle => open file OR str from filehandle.read()

        Output
        ------
        event => instance of Event() class as described above
        """
        p = self.parser
        event         = Event(event_type='earthquake')
        origin        = Origin()
        focal_mech    = FocalMechanism()
        nodal_planes  = NodalPlanes()
        moment_tensor = MomentTensor()
        principal_ax  = PrincipalAxes()
        magnitude     = Magnitude()
        data_used     = DataUsed()
        creation_info = CreationInfo(agency_id='NN')
        ev_mode = 'automatic'
        ev_stat = 'preliminary'
        evid = None
        orid = None
        # Parse the entire file line by line.
        for n,l in enumerate(p.line):
            if 'REVIEWED BY NSL STAFF' in l:
                ev_mode = 'manual'
                ev_stat = 'reviewed'
            if 'Event ID' in l:
                evid = p._id(n)
            if 'Origin ID' in l:
                orid = p._id(n)
            if 'Ichinose' in l:
                moment_tensor.category = 'regional'
            if re.match(r'^\d{4}\/\d{2}\/\d{2}', l):
                ev = p._event_info(n)
            if 'Depth' in l:
                derived_depth = p._depth(n)
            if 'Mw' in l:
                magnitude.mag = p._mw(n) 
                magnitude.magnitude_type = 'Mw'
            if 'Mo' in l and 'dyne' in l:
                moment_tensor.scalar_moment = p._mo(n)
            if 'Percent Double Couple' in l:
                moment_tensor.double_couple = p._percent(n)
            if 'Percent CLVD' in l:
                moment_tensor.clvd = p._percent(n)
            if 'Epsilon' in l:
                moment_tensor.variance = p._epsilon(n)
            if 'Percent Variance Reduction' in l:
                moment_tensor.variance_reduction = p._percent(n)
            if 'Major Double Couple' in l and 'strike' in p.line[n+1]:
                np = p._double_couple(n)
                nodal_planes.nodal_plane_1 = NodalPlane(*np[0])
                nodal_planes.nodal_plane_2 = NodalPlane(*np[1])
                nodal_planes.preferred_plane = 1
            if 'Spherical Coordinates' in l:
                mt = p._mt_sphere(n)
                moment_tensor.tensor = Tensor(
                    m_rr = mt['Mrr'],
                    m_tt = mt['Mtt'],
                    m_pp = mt['Mff'],
                    m_rt = mt['Mrt'],
                    m_rp = mt['Mrf'],
                    m_tp = mt['Mtf'],
                    )
            if 'Eigenvalues and eigenvectors of the Major Double Couple' in l:
                ax = p._vectors(n)
                principal_ax.t_axis = Axis(ax['T']['trend'], ax['T']['plunge'], ax['T']['ev'])
                principal_ax.p_axis = Axis(ax['P']['trend'], ax['P']['plunge'], ax['P']['ev'])
                principal_ax.n_axis = Axis(ax['N']['trend'], ax['N']['plunge'], ax['N']['ev'])
            if 'Number of Stations' in l:
                data_used.station_count = p._number_of_stations(n)
            if 'Maximum' in l and 'Gap' in l:
                focal_mech.azimuthal_gap = p._gap(n)
            if re.match(r'^Date', l):
                creation_info.creation_time = p._creation_time(n)
        # Creation Time
        creation_info.version = orid
        # Fill in magnitude values
        magnitude.evaluation_mode = ev_mode
        magnitude.evaluation_status = ev_stat
        magnitude.creation_info = creation_info.copy()
        magnitude.resource_id = self._rid(magnitude)
        # Stub origin
        origin.time = ev.get('time')
        origin.latitude = ev.get('lat')
        origin.longitude = ev.get('lon')
        origin.depth = derived_depth * 1000.
        origin.depth_type = "from moment tensor inversion"
        origin.creation_info = creation_info.copy()
         # Unique from true origin ID
        _oid = self._rid(origin)
        origin.resource_id = ResourceIdentifier(str(_oid) + '/mt')
        del _oid
        # Make an id for the MT that references this origin
        ogid = str(origin.resource_id)
        doid = ResourceIdentifier(ogid, referred_object=origin)
        # Make an id for the moment tensor mag which references this mag
        mrid = str(magnitude.resource_id)
        mmid = ResourceIdentifier(mrid, referred_object=magnitude)
        # MT todo: could check/use URL for RID if parsing the php file
        moment_tensor.evaluation_mode = ev_mode
        moment_tensor.evaluation_status = ev_stat
        moment_tensor.data_used = data_used
        moment_tensor.moment_magnitude_id = mmid
        moment_tensor.derived_origin_id = doid
        moment_tensor.creation_info = creation_info.copy()
        moment_tensor.resource_id = self._rid(moment_tensor)
        # Fill in focal_mech values
        focal_mech.nodal_planes  = nodal_planes
        focal_mech.moment_tensor = moment_tensor
        focal_mech.principal_axes = principal_ax
        focal_mech.creation_info = creation_info.copy()
        focal_mech.resource_id = self._rid(focal_mech)
        # add mech and new magnitude to event
        event.focal_mechanisms = [focal_mech]
        event.magnitudes = [magnitude]
        event.origins = [origin]
        event.creation_info = creation_info.copy()
        # If an MT was done, that's the preferred mag/mech
        event.preferred_magnitude_id = str(magnitude.resource_id)
        event.preferred_focal_mechanism_id = str(focal_mech.resource_id)
        if evid:
            event.creation_info.version = evid
        event.resource_id = self._rid(event)
        self.event = event
Пример #12
0
def _internal_read_single_scardec(buf):
    """
    Reads a single SCARDEC file to a :class:`~obspy.core.event.Catalog`
    object.

    :param buf: File to read.
    :type buf: open file or file-like object
    """
    # The first line encodes the origin time and epicenter
    line = buf.readline()

    origin_time = line.strip().split()[:6]
    values = list(map(int, origin_time[:-1])) + \
        [float(origin_time[-1])]
    try:
        origin_time = UTCDateTime(*values)
    except (TypeError, ValueError):
        warnings.warn("Could not determine origin time from line: %s. Will "
                      "be set to zero." % line)
        origin_time = UTCDateTime(0)
    line = line.split()[6:]
    latitude, longitude = map(float, line[:2])

    # The second line encodes depth and the two focal mechanisms
    line = buf.readline()
    line = line.split()

    # First three values are depth, scalar moment (in Nm) and moment magnitude
    depth, scalar_moment, moment_mag = map(float, line[0:3])

    # depth is in km in SCARDEC files
    depth *= 1e3

    # Next six values are strike, dip, rake for both planes
    strike1, dip1, rake1 = map(float, line[3:6])
    strike2, dip2, rake2 = map(float, line[6:9])

    # The rest of the file is the moment rate function
    # In each line: time (sec), moment rate (Nm/sec)
    stf_time = []
    stf_mr = []
    for line in buf:
        stf_time.append(float(line.split()[0]))
        stf_mr.append(float(line.split()[1]))

    # Normalize the source time function
    stf_mr = np.array(stf_mr)
    stf_mr /= scalar_moment

    # Calculate the time step
    dt = np.mean(np.diff(stf_time))

    # Calculate the stf offset (time of first sample wrt to origin time)
    offset = stf_time[0]

    # event name is set to generic value for now
    event_name = 'SCARDEC_event'

    cmt_origin = Origin(resource_id=_get_resource_id(event_name,
                                                     "origin",
                                                     tag="cmt"),
                        time=origin_time,
                        longitude=longitude,
                        latitude=latitude,
                        depth=depth,
                        origin_type="centroid",
                        region=_fe.get_region(longitude=longitude,
                                              latitude=latitude))

    cmt_mag = Magnitude(resource_id=_get_resource_id(event_name,
                                                     "magnitude",
                                                     tag="mw"),
                        mag=moment_mag,
                        magnitude_type="mw",
                        origin_id=cmt_origin.resource_id)

    nod1 = NodalPlane(strike=strike1, dip=dip1, rake=rake1)
    nod2 = NodalPlane(strike=strike2, dip=dip2, rake=rake2)
    nod = NodalPlanes(nodal_plane_1=nod1, nodal_plane_2=nod2)

    foc_mec = FocalMechanism(resource_id=_get_resource_id(
        event_name, "focal_mechanism"),
                             nodal_planes=nod)

    dip1 *= np.pi / 180.
    rake1 *= np.pi / 180.
    strike1 *= np.pi / 180.

    mxx = -scalar_moment * (
        (np.sin(dip1) * np.cos(rake1) * np.sin(2 * strike1)) +
        (np.sin(2 * dip1) * np.sin(rake1) * np.sin(2 * strike1)))
    mxy = scalar_moment * (
        (np.sin(dip1) * np.cos(rake1) * np.cos(2 * strike1)) +
        (np.sin(2 * dip1) * np.sin(rake1) * np.sin(2 * strike1) * 0.5))
    myy = scalar_moment * (
        (np.sin(dip1) * np.cos(rake1) * np.sin(2 * strike1)) -
        (np.sin(2 * dip1) * np.sin(rake1) * np.cos(2 * strike1)))
    mxz = -scalar_moment * (
        (np.cos(dip1) * np.cos(rake1) * np.cos(strike1)) +
        (np.cos(2 * dip1) * np.sin(rake1) * np.sin(strike1)))
    myz = -scalar_moment * (
        (np.cos(dip1) * np.cos(rake1) * np.sin(strike1)) -
        (np.cos(2 * dip1) * np.sin(rake1) * np.cos(strike1)))
    mzz = scalar_moment * (np.sin(2 * dip1) * np.sin(rake1))

    tensor = Tensor(m_rr=mxx, m_tt=myy, m_pp=mzz, m_rt=mxy, m_rp=mxz, m_tp=myz)

    cm = [
        Comment(text="Basis system: North,East,Down \
                        (Jost and Herrmann 1989)")
    ]
    cm[0].resource_id = _get_resource_id(event_name, 'comment', 'mt')
    cm.append(
        Comment(text="MT derived from focal mechanism, therefore \
                            constrained to pure double couple.",
                force_resource_id=False))

    # Write moment rate function
    extra = {
        'moment_rate': {
            'value': stf_mr,
            'namespace': r"http://test.org/xmlns/0.1"
        },
        'dt': {
            'value': dt,
            'namespace': r"http://test.org/xmlns/0.1"
        },
        'offset': {
            'value': offset,
            'namespace': r"http://test.org/xmlns/0.1"
        }
    }

    # Source time function
    stf = SourceTimeFunction(type="unknown")
    stf.extra = extra

    mt = MomentTensor(resource_id=_get_resource_id(event_name,
                                                   "moment_tensor"),
                      derived_origin_id=cmt_origin.resource_id,
                      moment_magnitude_id=cmt_mag.resource_id,
                      scalar_moment=scalar_moment,
                      tensor=tensor,
                      source_time_function=stf,
                      comments=cm)

    # Assemble everything.
    foc_mec.moment_tensor = mt

    ev = Event(resource_id=_get_resource_id(event_name, "event"),
               event_type="earthquake")
    ev.event_descriptions.append(
        EventDescription(text=event_name, type="earthquake name"))
    ev.comments.append(
        Comment(text="Hypocenter catalog: SCARDEC", force_resource_id=False))

    ev.origins.append(cmt_origin)
    ev.magnitudes.append(cmt_mag)
    ev.focal_mechanisms.append(foc_mec)

    # Set the preferred items.
    ev.preferred_origin_id = cmt_origin.resource_id.id
    ev.preferred_magnitude_id = cmt_mag.resource_id.id
    ev.preferred_focal_mechanism_id = foc_mec.resource_id.id

    ev.scope_resource_ids()

    return ev
Пример #13
0
def _internal_read_single_scardec(buf):
    """
    Reads a single SCARDEC file to a :class:`~obspy.core.event.Catalog`
    object.

    :param buf: File to read.
    :type buf: Open file or open file like object.
    """
    # The first line encodes the origin time and epicenter
    line = buf.readline()

    origin_time = line.strip().split()[:6]
    values = list(map(int, origin_time[:-1])) + \
        [float(origin_time[-1])]
    try:
        origin_time = UTCDateTime(*values)
    except (TypeError, ValueError):
        warnings.warn("Could not determine origin time from line: %s. Will "
                      "be set to zero." % line)
        origin_time = UTCDateTime(0)
    line = line.split()[6:]
    latitude, longitude = map(float, line[:2])

    # The second line encodes depth and the two focal mechanisms
    line = buf.readline()
    line = line.split()

    # First three values are depth, scalar moment (in Nm) and moment magnitude
    depth, scalar_moment, moment_mag = map(float, line[0:3])

    # depth is in km in SCARDEC files
    depth *= 1e3

    # Next six values are strike, dip, rake for both planes
    strike1, dip1, rake1 = map(float, line[3:6])
    strike2, dip2, rake2 = map(float, line[6:9])

    # The rest of the file is the moment rate function
    # In each line: time (sec), moment rate (Nm/sec)
    stf_time = []
    stf_mr = []
    for line in buf:
        stf_time.append(float(line.split()[0]))
        stf_mr.append(float(line.split()[1]))

    # Normalize the source time function
    stf_mr = np.array(stf_mr)
    stf_mr /= scalar_moment

    # Calculate the time step
    dt = np.mean(np.diff(stf_time))

    # Calculate the stf offset (time of first sample wrt to origin time)
    offset = stf_time[0]

    # event name is set to generic value for now
    event_name = 'SCARDEC_event'

    cmt_origin = Origin(
        resource_id=_get_resource_id(event_name, "origin", tag="cmt"),
        time=origin_time,
        longitude=longitude,
        latitude=latitude,
        depth=depth,
        origin_type="centroid",
        region=_fe.get_region(longitude=longitude,
                              latitude=latitude)
    )

    cmt_mag = Magnitude(
        resource_id=_get_resource_id(event_name, "magnitude", tag="mw"),
        mag=moment_mag,
        magnitude_type="mw",
        origin_id=cmt_origin.resource_id
    )

    nod1 = NodalPlane(strike=strike1, dip=dip1, rake=rake1)
    nod2 = NodalPlane(strike=strike2, dip=dip2, rake=rake2)
    nod = NodalPlanes(nodal_plane_1=nod1, nodal_plane_2=nod2)

    foc_mec = FocalMechanism(
        resource_id=_get_resource_id(event_name, "focal_mechanism"),
        nodal_planes=nod
    )

    dip1 *= np.pi / 180.
    rake1 *= np.pi / 180.
    strike1 *= np.pi / 180.

    mxx = - scalar_moment * ((np.sin(dip1) * np.cos(rake1) *
                              np.sin(2 * strike1)) +
                             (np.sin(2 * dip1) * np.sin(rake1) *
                              np.sin(2 * strike1)))
    mxy = scalar_moment * ((np.sin(dip1) * np.cos(rake1) *
                            np.cos(2 * strike1)) +
                           (np.sin(2 * dip1) * np.sin(rake1) *
                            np.sin(2 * strike1) * 0.5))
    myy = scalar_moment * ((np.sin(dip1) * np.cos(rake1) *
                            np.sin(2 * strike1)) -
                           (np.sin(2 * dip1) * np.sin(rake1) *
                            np.cos(2 * strike1)))
    mxz = - scalar_moment * ((np.cos(dip1) * np.cos(rake1) *
                              np.cos(strike1)) +
                             (np.cos(2 * dip1) * np.sin(rake1) *
                              np.sin(strike1)))
    myz = - scalar_moment * ((np.cos(dip1) * np.cos(rake1) *
                             np.sin(strike1)) -
                             (np.cos(2 * dip1) * np.sin(rake1) *
                              np.cos(strike1)))
    mzz = scalar_moment * (np.sin(2 * dip1) * np.sin(rake1))

    tensor = Tensor(m_rr=mxx, m_tt=myy, m_pp=mzz, m_rt=mxy, m_rp=mxz, m_tp=myz)

    cm = [Comment(text="Basis system: North,East,Down \
                        (Jost and Herrmann 1989)")]
    cm[0].resource_id = _get_resource_id(event_name, 'comment', 'mt')
    cm.append(Comment(text="MT derived from focal mechanism, therefore \
                            constrained to pure double couple.",
                      force_resource_id=False))

    # Write moment rate function
    extra = {'moment_rate': {'value': stf_mr,
                             'namespace': r"http://test.org/xmlns/0.1"},
             'dt': {'value': dt,
                    'namespace': r"http://test.org/xmlns/0.1"},
             'offset': {'value': offset,
                        'namespace': r"http://test.org/xmlns/0.1"}
             }

    # Source time function
    stf = SourceTimeFunction(type="unknown")
    stf.extra = extra

    mt = MomentTensor(
        resource_id=_get_resource_id(event_name, "moment_tensor"),
        derived_origin_id=cmt_origin.resource_id,
        moment_magnitude_id=cmt_mag.resource_id,
        scalar_moment=scalar_moment,
        tensor=tensor,
        source_time_function=stf,
        comments=cm
    )

    # Assemble everything.
    foc_mec.moment_tensor = mt

    ev = Event(resource_id=_get_resource_id(event_name, "event"),
               event_type="earthquake")
    ev.event_descriptions.append(EventDescription(text=event_name,
                                                  type="earthquake name"))
    ev.comments.append(Comment(
        text="Hypocenter catalog: SCARDEC",
        force_resource_id=False))

    ev.origins.append(cmt_origin)
    ev.magnitudes.append(cmt_mag)
    ev.focal_mechanisms.append(foc_mec)

    # Set the preferred items.
    ev.preferred_origin_id = cmt_origin.resource_id.id
    ev.preferred_magnitude_id = cmt_mag.resource_id.id
    ev.preferred_focal_mechanism_id = foc_mec.resource_id.id

    return ev
Пример #14
0
    def _parseRecordDp(self, line, event):
        """
        Parses the 'source parameter data - primary' record Dp
        """
        source_contributor = line[2:6].strip()
        computation_type = line[6]
        exponent = self._intZero(line[7])
        scale = math.pow(10, exponent)
        centroid_origin_time = line[8:14] + "." + line[14]
        orig_time_stderr = line[15:17]
        if orig_time_stderr == "FX":
            orig_time_stderr = "Fixed"
        else:
            orig_time_stderr = self._floatWithFormat(orig_time_stderr, "2.1", scale)
        centroid_latitude = self._floatWithFormat(line[17:21], "4.2")
        lat_type = line[21]
        if centroid_latitude is not None:
            centroid_latitude *= self._coordinateSign(lat_type)
        lat_stderr = line[22:25]
        if lat_stderr == "FX":
            lat_stderr = "Fixed"
        else:
            lat_stderr = self._floatWithFormat(lat_stderr, "3.2", scale)
        centroid_longitude = self._floatWithFormat(line[25:30], "5.2")
        lon_type = line[30]
        if centroid_longitude is not None:
            centroid_longitude *= self._coordinateSign(lon_type)
        lon_stderr = line[31:34]
        if lon_stderr == "FX":
            lon_stderr = "Fixed"
        else:
            lon_stderr = self._floatWithFormat(lon_stderr, "3.2", scale)
        centroid_depth = self._floatWithFormat(line[34:38], "4.1")
        depth_stderr = line[38:40]
        if depth_stderr == "FX" or depth_stderr == "BD":
            depth_stderr = "Fixed"
        else:
            depth_stderr = self._floatWithFormat(depth_stderr, "2.1", scale)
        station_number = self._intZero(line[40:43])
        component_number = self._intZero(line[43:46])
        station_number2 = self._intZero(line[46:48])
        component_number2 = self._intZero(line[48:51])
        # unused: half_duration = self._floatWithFormat(line[51:54], '3.1')
        moment = self._floatWithFormat(line[54:56], "2.1")
        moment_stderr = self._floatWithFormat(line[56:58], "2.1")
        moment_exponent = self._int(line[58:60])
        if (moment is not None) and (moment_exponent is not None):
            moment *= math.pow(10, moment_exponent)
        if (moment_stderr is not None) and (moment_exponent is not None):
            moment_stderr *= math.pow(10, moment_exponent)

        evid = event.resource_id.id.split("/")[-1]
        # Create a new origin only if centroid time is defined:
        origin = None
        if centroid_origin_time.strip() != ".":
            origin = Origin()
            res_id = "/".join(
                (res_id_prefix, "origin", evid, source_contributor.lower(), "mw" + computation_type.lower())
            )
            origin.resource_id = ResourceIdentifier(id=res_id)
            origin.creation_info = CreationInfo(agency_id=source_contributor)
            date = event.origins[0].time.strftime("%Y%m%d")
            origin.time = UTCDateTime(date + centroid_origin_time)
            # Check if centroid time is on the next day:
            if origin.time < event.origins[0].time:
                origin.time += timedelta(days=1)
            self._storeUncertainty(origin.time_errors, orig_time_stderr)
            origin.latitude = centroid_latitude
            origin.longitude = centroid_longitude
            origin.depth = centroid_depth * 1000
            if lat_stderr == "Fixed" and lon_stderr == "Fixed":
                origin.epicenter_fixed = True
            else:
                self._storeUncertainty(origin.latitude_errors, self._latErrToDeg(lat_stderr))
                self._storeUncertainty(origin.longitude_errors, self._lonErrToDeg(lon_stderr, origin.latitude))
            if depth_stderr == "Fixed":
                origin.depth_type = "operator assigned"
            else:
                origin.depth_type = "from location"
                self._storeUncertainty(origin.depth_errors, depth_stderr, scale=1000)
            quality = OriginQuality()
            quality.used_station_count = station_number + station_number2
            quality.used_phase_count = component_number + component_number2
            origin.quality = quality
            origin.type = "centroid"
            event.origins.append(origin)
        focal_mechanism = FocalMechanism()
        res_id = "/".join(
            (res_id_prefix, "focalmechanism", evid, source_contributor.lower(), "mw" + computation_type.lower())
        )
        focal_mechanism.resource_id = ResourceIdentifier(id=res_id)
        focal_mechanism.creation_info = CreationInfo(agency_id=source_contributor)
        moment_tensor = MomentTensor()
        if origin is not None:
            moment_tensor.derived_origin_id = origin.resource_id
        else:
            # this is required for QuakeML validation:
            res_id = "/".join((res_id_prefix, "no-origin"))
            moment_tensor.derived_origin_id = ResourceIdentifier(id=res_id)
        for mag in event.magnitudes:
            if mag.creation_info.agency_id == source_contributor:
                moment_tensor.moment_magnitude_id = mag.resource_id
        res_id = "/".join(
            (res_id_prefix, "momenttensor", evid, source_contributor.lower(), "mw" + computation_type.lower())
        )
        moment_tensor.resource_id = ResourceIdentifier(id=res_id)
        moment_tensor.scalar_moment = moment
        self._storeUncertainty(moment_tensor.scalar_moment_errors, moment_stderr)
        data_used = DataUsed()
        data_used.station_count = station_number + station_number2
        data_used.component_count = component_number + component_number2
        if computation_type == "C":
            res_id = "/".join((res_id_prefix, "methodID=CMT"))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # CMT algorithm uses long-period body waves,
            # very-long-period surface waves and
            # intermediate period surface waves (since 2004
            # for shallow and intermediate-depth earthquakes
            # --Ekstrom et al., 2012)
            data_used.wave_type = "combined"
        if computation_type == "M":
            res_id = "/".join((res_id_prefix, "methodID=moment_tensor"))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: not sure which kind of data is used by
            # "moment tensor" algorithm.
            data_used.wave_type = "unknown"
        elif computation_type == "B":
            res_id = "/".join((res_id_prefix, "methodID=broadband_data"))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: is 'combined' correct here?
            data_used.wave_type = "combined"
        elif computation_type == "F":
            res_id = "/".join((res_id_prefix, "methodID=P-wave_first_motion"))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            data_used.wave_type = "P waves"
        elif computation_type == "S":
            res_id = "/".join((res_id_prefix, "methodID=scalar_moment"))
            focal_mechanism.method_id = ResourceIdentifier(id=res_id)
            # FIXME: not sure which kind of data is used
            # for scalar moment determination.
            data_used.wave_type = "unknown"
        moment_tensor.data_used = data_used
        focal_mechanism.moment_tensor = moment_tensor
        event.focal_mechanisms.append(focal_mechanism)
        return focal_mechanism
Пример #15
0
def write_qml(config, sourcepar):
    if not config.options.qml_file:
        return
    qml_file = config.options.qml_file
    cat = read_events(qml_file)
    evid = config.hypo.evid
    try:
        ev = [e for e in cat if evid in str(e.resource_id)][0]
    except Exception:
        logging.warning('Unable to find evid "{}" in QuakeML file. '
                        'QuakeML output will not be written.'.format(evid))

    origin = ev.preferred_origin()
    if origin is None:
        origin = ev.origins[0]
    origin_id = origin.resource_id
    origin_id_strip = origin_id.id.split('/')[-1]
    origin_id_strip = origin_id_strip.replace(config.smi_strip_from_origin_id,
                                              '')

    # Common parameters
    ssp_version = get_versions()['version']
    method_id = config.smi_base + '/sourcespec/' + ssp_version
    cr_info = CreationInfo()
    cr_info.agency_id = config.agency_id
    if config.author is None:
        author = '{}@{}'.format(getuser(), gethostname())
    else:
        author = config.author
    cr_info.author = author
    cr_info.creation_time = UTCDateTime()

    means = sourcepar.means_weight
    errors = sourcepar.errors_weight
    stationpar = sourcepar.station_parameters

    # Magnitude
    mag = Magnitude()
    _id = config.smi_magnitude_template.replace('$SMI_BASE', config.smi_base)
    _id = _id.replace('$ORIGIN_ID', origin_id_strip)
    mag.resource_id = ResourceIdentifier(id=_id)
    mag.method_id = ResourceIdentifier(id=method_id)
    mag.origin_id = origin_id
    mag.magnitude_type = 'Mw'
    mag.mag = means['Mw']
    mag_err = QuantityError()
    mag_err.uncertainty = errors['Mw']
    mag_err.confidence_level = 68.2
    mag.mag_errors = mag_err
    mag.station_count = len([_s for _s in stationpar.keys()])
    mag.evaluation_mode = 'automatic'
    mag.creation_info = cr_info

    # Seismic moment -- It has to be stored in a MomentTensor object
    # which, in turn, is part of a FocalMechanism object
    mt = MomentTensor()
    _id = config.smi_moment_tensor_template.replace('$SMI_BASE',
                                                    config.smi_base)
    _id = _id.replace('$ORIGIN_ID', origin_id_strip)
    mt.resource_id = ResourceIdentifier(id=_id)
    mt.derived_origin_id = origin_id
    mt.moment_magnitude_id = mag.resource_id
    mt.scalar_moment = means['Mo']
    mt_err = QuantityError()
    mt_err.lower_uncertainty = errors['Mo'][0]
    mt_err.upper_uncertainty = errors['Mo'][1]
    mt_err.confidence_level = 68.2
    mt.scalar_moment_errors = mt_err
    mt.method_id = method_id
    mt.creation_info = cr_info
    # And here is the FocalMechanism object
    fm = FocalMechanism()
    _id = config.smi_focal_mechanism_template.replace('$SMI_BASE',
                                                      config.smi_base)
    _id = _id.replace('$ORIGIN_ID', origin_id_strip)
    fm.resource_id = ResourceIdentifier(id=_id)
    fm.triggering_origin_id = origin_id
    fm.method_id = ResourceIdentifier(id=method_id)
    fm.moment_tensor = mt
    fm.creation_info = cr_info
    ev.focal_mechanisms.append(fm)

    # Station magnitudes
    for statId in sorted(stationpar.keys()):
        par = stationpar[statId]
        st_mag = StationMagnitude()
        seed_id = statId.split()[0]
        _id = config.smi_station_magnitude_template.replace(
            '$SMI_MAGNITUDE_TEMPLATE', config.smi_magnitude_template)
        _id = _id.replace('$ORIGIN_ID', origin_id_strip)
        _id = _id.replace('$SMI_BASE', config.smi_base)
        _id = _id.replace('$WAVEFORM_ID', seed_id)
        st_mag.resource_id = ResourceIdentifier(id=_id)
        st_mag.origin_id = origin_id
        st_mag.mag = par['Mw']
        st_mag.station_magnitude_type = 'Mw'
        st_mag.method_id = mag.method_id
        st_mag.creation_info = cr_info
        st_mag.waveform_id = WaveformStreamID(seed_string=seed_id)
        st_mag.extra = SSPExtra()
        st_mag.extra.moment = SSPTag(par['Mo'])
        st_mag.extra.corner_frequency = SSPTag(par['fc'])
        st_mag.extra.t_star = SSPTag(par['t_star'])
        ev.station_magnitudes.append(st_mag)
        st_mag_contrib = StationMagnitudeContribution()
        st_mag_contrib.station_magnitude_id = st_mag.resource_id
        mag.station_magnitude_contributions.append(st_mag_contrib)
    ev.magnitudes.append(mag)

    # Write other average parameters as custom tags
    ev.extra = SSPExtra()
    ev.extra.corner_frequency = SSPContainerTag()
    ev.extra.corner_frequency.value.value = SSPTag(means['fc'])
    ev.extra.corner_frequency.value.lower_uncertainty =\
        SSPTag(errors['fc'][0])
    ev.extra.corner_frequency.value.upper_uncertainty =\
        SSPTag(errors['fc'][1])
    ev.extra.corner_frequency.value.confidence_level = SSPTag(68.2)
    ev.extra.t_star = SSPContainerTag()
    ev.extra.t_star.value.value = SSPTag(means['t_star'])
    ev.extra.t_star.value.uncertainty = SSPTag(errors['t_star'])
    ev.extra.t_star.value.confidence_level = SSPTag(68.2)
    ev.extra.source_radius = SSPContainerTag()
    ev.extra.source_radius.value.value = SSPTag(means['ra'])
    ev.extra.source_radius.value.lower_uncertainty =\
        SSPTag(errors['ra'][0])
    ev.extra.source_radius.value.upper_uncertainty =\
        SSPTag(errors['ra'][1])
    ev.extra.source_radius.value.confidence_level = SSPTag(68.2)
    ev.extra.stress_drop = SSPContainerTag()
    ev.extra.stress_drop.value.value = SSPTag(means['bsd'])
    ev.extra.stress_drop.value.lower_uncertainty =\
        SSPTag(errors['bsd'][0])
    ev.extra.stress_drop.value.upper_uncertainty =\
        SSPTag(errors['bsd'][1])
    ev.extra.stress_drop.value.confidence_level = SSPTag(68.2)

    if config.set_preferred_magnitude:
        ev.preferred_magnitude_id = mag.resource_id.id

    qml_file_out = os.path.join(config.options.outdir, evid + '.xml')
    ev.write(qml_file_out, format='QUAKEML')
    logging.info('QuakeML file written to: ' + qml_file_out)